Edelmann Jan-Christoph, Mair Dominik, Ussmueller Thomas
Faculty of Engineering Science, University of Innsbruck, Microelectronics and Implantable Systems, Department of Mechatronics, Technikerstrasse 13, 6020 Innsbruck, Austria, Phone: +43 512 507-62733, Fax: +43 512 507-62799.
Faculty of Engineering Science, University of Innsbruck, Microelectronics and Implantable Systems, Department of Mechatronics, Technikerstrasse 13, 6020 Innsbruck, Austria.
Biomed Tech (Berl). 2019 Apr 24;64(2):233-241. doi: 10.1515/bmt-2017-0157.
This manuscript introduces a novel concept for measuring coil coupling for extremely loose-coupled coils (coupling factors k<10-6; mutual inductance values M<10-10 H). Such a coupling is found everywhere where the ratio of solenoid diameter to coil spacing is >50. Measuring these quantities with a low-power technology requires a sophisticated setup that goes beyond the sensitivity of state-of-the art approaches. The methodology is validated using laboratory measurements with three sets of solenoids (two ferrite-cored, one air-cored) and numerical simulations with COMSOL Multiphysics 5.2a, Stockholm, Sweden. The concept is then employed to investigate the channel characteristics for inductive through-the-head communication within the 3.155-3.195 MHz band. This selected part of the spectrum is in accordance with International Telecommunication Union Radio Regulation 5.116 for low-power wireless hearing aids. By applying a phantom solution, we demonstrate that human tissue layers are transparent for magnetic fields within these frequencies. However, the influence from the relative coil arrangement is evaluated in detail as it restricts the communication range significantly. The coupling results for off-the-shelf Sonion, Roskilde, Denmark, RF 02 AA 10 solenoids considering both lateral and axial displacements might be of special interest for a number of near-field applications.
本文介绍了一种用于测量极松耦合线圈(耦合因子k<10-6;互感值M<10-10 H)的线圈耦合的新概念。在螺线管直径与线圈间距之比>50的任何地方都能发现这种耦合。用低功率技术测量这些量需要一个复杂的设置,该设置超出了现有技术方法的灵敏度。使用三组螺线管(两组铁氧体磁芯,一组空心)进行实验室测量,并使用瑞典斯德哥尔摩的COMSOL Multiphysics 5.2a进行数值模拟,对该方法进行了验证。然后采用该概念研究3.155-3.195 MHz频段内电感式头部穿透通信的信道特性。该选定的频谱部分符合国际电信联盟无线电规则5.116中对低功率无线助听器的规定。通过应用虚拟解决方案,我们证明了人体组织层在这些频率范围内对磁场是透明的。然而,由于相对线圈排列会显著限制通信范围,因此对其影响进行了详细评估。对于许多近场应用来说,考虑横向和轴向位移的丹麦罗斯基勒市现成的索宁(Sonion)RF 02 AA 10螺线管的耦合结果可能会特别令人感兴趣。